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能量传感器 NFE2L1 的功能障碍会触发无法控制的 AMPK 信号传导和葡萄糖代谢重编程。

Dysfunction of the energy sensor NFE2L1 triggers uncontrollable AMPK signaling and glucose metabolism reprogramming.

机构信息

School of Pharmaceutical Sciences (Shenzhen), Sun Yat-sen University, Shenzhen, 518107, China.

School of Life Sciences, Zhengzhou University, Zhengzhou, 450001, China.

出版信息

Cell Death Dis. 2022 May 25;13(5):501. doi: 10.1038/s41419-022-04917-3.

Abstract

The antioxidant transcription factor NFE2L1 (also called Nrf1) acts as a core regulator of redox signaling and metabolism homeostasis, and thus, its dysfunction results in multiple systemic metabolic diseases. However, the molecular mechanism(s) by which NFE2L1 regulates glycose and lipid metabolism remains elusive. Here, we found that loss of NFE2L1 in human HepG2 cells led to a lethal phenotype upon glucose deprivation and NFE2L1 deficiency could affect the uptake of glucose. Further experiments revealed that glycosylation of NFE2L1 enabled it to sense the energy state. These results indicated that NFE2L1 can serve as a dual sensor and regulator of glucose homeostasis. The transcriptome, metabolome, and seahorse data further revealed that disruption of NFE2L1 could reprogram glucose metabolism to aggravate the Warburg effect in NFE2L1-silenced hepatoma cells, concomitant with mitochondrial damage. Co-expression and Co-immunoprecipitation experiments demonstrated that NFE2L1 could directly interact and inhibit AMPK. Collectively, NFE2L1 functioned as an energy sensor and negatively regulated AMPK signaling through directly interacting with AMPK. The novel NFE2L1/AMPK signaling pathway delineate the mechanism underlying of NFE2L1-related metabolic diseases and highlight the crosstalk between redox homeostasis and metabolism homeostasis.

摘要

抗氧化转录因子 NFE2L1(也称为 Nrf1)作为氧化还原信号和代谢平衡的核心调节剂发挥作用,因此其功能障碍会导致多种全身代谢疾病。然而,NFE2L1 调节糖和脂质代谢的分子机制仍不清楚。在这里,我们发现人 HepG2 细胞中 NFE2L1 的缺失会导致葡萄糖剥夺时的致命表型,并且 NFE2L1 的缺乏会影响葡萄糖的摄取。进一步的实验表明,NFE2L1 的糖基化使其能够感知能量状态。这些结果表明,NFE2L1 可以作为葡萄糖稳态的双传感器和调节剂。转录组、代谢组和 Seahorse 数据进一步表明,破坏 NFE2L1 可以重新编程葡萄糖代谢,加剧 NFE2L1 沉默肝癌细胞中的瓦伯格效应,同时伴有线粒体损伤。共表达和共免疫沉淀实验表明,NFE2L1 可以直接相互作用并抑制 AMPK。总之,NFE2L1 作为能量传感器,通过直接与 AMPK 相互作用,负调控 AMPK 信号通路。新的 NFE2L1/AMPK 信号通路阐明了与 NFE2L1 相关代谢疾病的机制,并强调了氧化还原平衡和代谢平衡之间的串扰。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eee4/9133051/cf7a77e9f1a0/41419_2022_4917_Fig1_HTML.jpg

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